论文标题
共轭聚合物的有序和无序域的电化学掺杂
Electrochemical Doping in Ordered and Disordered Domains of Conjugated Polymers
论文作者
论文摘要
共轭聚合物越来越多地用作有机混合离子电子导体,用于神经形态计算,生物电子和能量收集的电化学设备中。有效应用的设计依赖于高电化学掺杂水平,高电子电导率,快速掺杂/发射动力学和高离子摄取。在这项工作中,我们建立了结构性关系,并证明了如何通过秩序和混乱的共存来调节这些参数。我们使用原位时间分辨的光谱化学,谐振拉曼和Terahertz电导率测量来研究聚(3-己基噻吩)不同形态结构域中的电化学掺杂。我们的主要发现是,在混乱的聚合物区域中优先发现双极,它们的形成更快,并且在热力学上更受青睐。另一方面,极性子对有序域表示偏爱,从而导致截然不同的双极/极性比率和不同区域中的掺杂/dodoping动力学。我们证明,当双托隆开始在无序区域形成时,电子电导率显着提高,而在有序区域中的双二极子的存在对运输有害。我们的研究在理解形态对共轭聚合物电化学掺杂以及诱导的电导率增加方面提供了重大进展。
Conjugated polymers are increasingly used as organic mixed ionic-electronic conductors in electrochemical devices for neuromorphic computing, bioelectronics and energy harvesting. The design of efficient applications relies on high electrochemical doping levels, high electronic conductivity, fast doping/dedoping kinetics and high ionic uptake. In this work, we establish structure-property relations and demonstrate how these parameters can be modulated by the co-existence of order and disorder. We use in-situ time-resolved spectroelectrochemistry, resonant Raman and terahertz conductivity measurements to investigate the electrochemical doping in the different morphological domains of poly(3-hexylthiophene). Our main finding is that bipolarons are found preferentially in disordered polymer regions, where they are formed faster and are thermodynamically more favoured. On the other hand, polarons show a preference for ordered domains, leading to drastically different bipolaron/polaron ratios and doping/dedoping dynamics in the distinct regions. We evidence a significant enhancement of the electronic conductivity when bipolarons start being formed in the disordered regions, while the presence of bipolarons in the ordered regions is detrimental for transport. Our study provides significant advances in the understanding of the impact of morphology on the electrochemical doping of conjugated polymers and the induced increase in conductivity.